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Remediation of cadmium and pyrene co-contaminated soil by washing with biodegradable chelating surfactant LED3A |
DIAO Jing-ru, LIU Xing-rui, ZHANG Lin-lin, DONG Ge-jun, ZHAO Bao-wei, JIANG Yu-feng |
School of Environmental and Municipal Engineering, Lanzhou Jiaotong University, Lanzhou 730070, China |
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Abstract In this study, sodium N-lauroyl ethylenediamine tetriacetate (LED3A), a biodegradable chelating surfactant, was used as washing agent to remove cadmium (Cd) and pyrene (Pyr) co-contaminants from soils by batch experiments. The effects of washing time, LED3A concentration, temperature, pH value, water-soil ratio and ionic strength on the removal efficiencies were extensively explored. In addition, the forms of Cd and Pyr in soil before and after washing were analyzed. The results indicated that LED3A could simultaneously removal of Cd and Pyr from the contaminated soil. The pseudo-second order kinetics model was most suitable for describing the desorption processes of the two kinds of pollutants. Compared with the corresponding single contaminated soil, the interaction of coexistence of Cd and Pyr reduced their equilibrium removal rates with 5.13% and 9.91%, respectively. The removal efficiencies of Cd and Pyr were both increased with the increasing of LED3A concentration (0~15000mg/L), temperature (15~35℃) and water-soil ratio (10:1~60:1). Under the optimal (cost-effective) conditions (12000mg/L, 25℃, 30:1water-soil ratio), the removal rates of Cd and Pyr were 57.66% and 51.07%, respectively. The pH value of the soil-solution system was preferably maintained at alkaline conditions (pH=11). Appropriate ionic strength (0.1mol/L Na+ or 0.005mol/L Ca2+) could significantly promote the removal effect. The contents of exchangeable and reducible fractions of Cd as well as the non-desorbing and desorbing fractions of Pyr decreased with 61.09%, 26.35%, 17.26% and 68.44%, respectively, compared with their contents before washing. The residual fraction analysis of contaminants in soil demonstrated that the proportion of bio-available fractions of Cd and Pyr was significantly decreased. Correspondingly, soil environmental hazards and ecological risk induced by co-contaminants could be effectively reduced by the proposed approach. Remediation of heavy metal and organic co-contaminated soil by washing with biodegradable LED3A could be a promising green remediation method.
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Received: 29 July 2022
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[1] |
李娇,吴劲,蒋进元,等.近十年土壤污染物源解析研究综述[J]. 土壤通报, 2018,49(1):232-242. Li J, Wu J, Jiang J Y, et al. Review on source apportionment of soil pollutants in recent ten years[J]. Chinese Journal of Soil Science, 2018,49(1):232-242.
|
[2] |
中华人民共和国环境保护部,中华人民共和国国土资源部.全国土壤污染状况调查公报[R]. 2014. State environmental protection administration of China, state land and resources administration of China. National bulletin of soil pollution survey[R]. 2014.
|
[3] |
Fan R J, Tian H H, Wu Q, et al. Mechanism of bio-electrokinetic remediation of pyrene contaminated soil:Effects of an electric field on the degradation pathway and microbial metabolic processes[J]. Journal of Hazardous Materials, 2022,422:126959.
|
[4] |
Zeng S Y, Ma J, Yang Y J, et al. Spatial assessment of farmland soil pollution and its potential human health risks in China[J]. Science of the Total Environment, 2019,687:642-653.
|
[5] |
Wang C, Yang Z Z, Zhang Y H, et al. PAHs and heavy metals in the surrounding soil of a cement plant Co-Processing hazardous waste[J]. Chemosphere, 2018,210:247-256.
|
[6] |
Wu S H, Zhou S L, Bao H J, et al. Improving risk management by using the spatial interaction relationship of heavy metals and PAHs in urban soil[J]. Journal of Hazardous Materials, 2019,364:108-116.
|
[7] |
Wang C, Luo Y, Tan H, et al. Responsiveness change of biochemistry and micro-ecology in alkaline soil under PAHs contamination with or without heavy metal interaction[J]. Environmental Pollution, 2020,266:115296.
|
[8] |
周玉璇,龙涛,祝欣,等.重金属与多环芳烃复合污染土壤的分布特征及修复技术研究进展[J]. 生态与农业环境学报, 2019,35:964-975. Zhou Y X, Long T, Zhu X, et al. Research progress on distribution and remediation technologies for the combined pollution of heavy metals and polycyclic aromatic hydrocarbons in soil[J]. Journal of Ecology and Rural Environment, 2019,35(8):964-975.
|
[9] |
Saberi N, Aghababaei M, Ostovar M, et al. Simultaneous removal of polycyclic aromatic hydrocarbon and heavy metals from an artificial clayey soil by enhanced electrokinetic method[J]. Journal of Environmental Management, 2018,217:897-905.
|
[10] |
Saeedi M, Li L Y, Grace J R. Desorption and mobility mechanisms of co-existing polycyclic aromatic hydrocarbons and heavy metals in clays and clay minerals[J]. Journal of Environmental Management, 2018,214:204-214.
|
[11] |
Liu Z F, Li Z G, Zhong H, et al. Recent advances in the environmental applications of biosurfactant saponins:A review[J]. Journal of Environmental Chemical Engineering, 2017,5(6):6030-6038.
|
[12] |
徐雷,代惠萍,魏树和.淋洗剂在重金属污染土壤修复中的研究进展[J]. 中国环境科学, 2021,41(11):5237-5244. Xu L, Dai H P, Wei S H. Advances of washing agents in remediation of heavy metal contaminated soil[J]. China Environmental Science, 2021,41(11):5237-5244.
|
[13] |
Trellu C, Mousset E, Pechaud Y, et al. Removal of hydrophobic organic pollutants from soil washing/flushing solutions:a critical review[J]. Journal of Hazardous materials, 2016,306:149-174.
|
[14] |
高一丹,袁旭音,汪宜敏,等.不同螯合剂对两类Cd和Ni污染土壤的淋洗修复对比[J]. 中国环境科学, 2022,42(1):250-257. Gao Y D, Yuan X Y, Wang Y M, et al. Leaching remediation efficiency of biodegradable chelating agents for the Cd and Ni contaminated soils[J]. China Environmental Science, 2022,42(1):250-257.
|
[15] |
Madrid F, Ballesteros R, Lacorte S, et al. Extraction of PAHs from an aged creosote-polluted soil by cyclodextrins and rhamnolipids. Side effects on removal and availability of potentially toxic elements[J]. Science of the Total Environment, 2019,653:384-392.
|
[16] |
Saeedi M, Li L Y, Grace J R. Simultaneous removal of polycyclic aromatic hydrocarbons and heavy metals from natural soil by combined non-ionic surfactants and EDTA as extracting reagents:Laboratory column tests[J]. Journal of Environmental Management, 2019,248:109258.
|
[17] |
孙贝丽,党志,郭楚玲,等.重金属-多氯联苯复合污染土壤同步洗脱[J]. 环境工程学报, 2015,9(3):1463-1470. Sun B L, Dang Z, Guo C L, et al. Simultaneous desorption of heavy metals and PCBs by composite eluents from contaminated soils[J]. Chinese Journal of Environmental Engineering, 2015,9(3):1463-1470.
|
[18] |
Reddy K R, Al-Hamdan A Z. Enhanced sequential flushing process for removal of mixed contaminants from soils[J]. Water, Air, & Soil Pollution, 2013,224(12):1-13.
|
[19] |
Yun S M, Kang C S, Kim J, et al. Evaluation of soil flushing of complex contaminated soil:an experimental and modeling simulation study[J]. Journal of Hazardous Materials, 2015,287:429-437.
|
[20] |
Zhang M, Feng M Y, Bai X, et al. Chelating surfactant N-lauroyl ethylenediamine triacetate enhanced electrokinetic remediation of copper and decabromodiphenyl ether co-contaminated low permeability soil:Applicability analysis[J]. Journal of Environmental Management, 2022,301:113888.
|
[21] |
Mohammadi A, Sohrabi B, Rashidi M, et al. The extracted saponin from ginseng as an efficient renewable biosurfactant for desorption enhancement of phenanthrene and nickel[J]. International Journal of Environmental Science and Technology, 2017,16(1):181-190.
|
[22] |
Rahman S, Rahman I M M, Ni S, et al. Enhanced remediation of arsenic-contaminated excavated soil using a binary blend of biodegradable surfactant and chelator[J]. Journal of Hazardous Materials, 2022,431:128562.
|
[23] |
王军,杨许召,李刚森.功能性表面活性剂制备与应用[M]. 北京:化学工业出版社, 2009:79-100. Wang J, Yang X S, Li G S. Synthesis and application of functional surfactants[M]. Beijing:Chemical Industry Press, 2009:79-100.
|
[24] |
Peng Z, Chen H, Li Y, et al. Chelating surfactant for the removal of heavy metals from wastewater and surfactant recovery[J]. Desalination and Water Treatment, 2020,206:229-234.
|
[25] |
Race M. Applicability of alkaline precipitation for the recovery of EDDS spent solution[J]. Journal of Environmental Management, 2017, 203:358-363.
|
[26] |
Lu L L, Liu G J, Wang J, et al. Bioavailability and mobility of heavy metals in soil in vicinity of a coal mine from Huaibei, China[J]. Human and Ecological Risk Assessment:An International Journal, 2017,23(5):1164-1177.
|
[27] |
Liu X Y, Hu X X, Zhang X Y, et al. Effect of Bacillus subtilis and NTA-APG on pyrene dissipation in phytoremediation of nickel co-contaminated wetlands by Scirpus triqueter[J]. Ecotoxicology and environmental safety, 2018,154:69-74.
|
[28] |
Fonseca B, Pazos M, Figueiredo H, et al. Desorption kinetics of phenanthrene and lead from historically contaminated soil[J]. Chemical Engineering Journal, 2011,167(1):84-90.
|
[29] |
Zhang W, Zheng J, Zheng P, et al. The roles of humic substances in the interactions of phenanthrene and heavy metals on the bentonite surface[J]. Journal of Soils and Sediments, 2015,15(7):1463-1472.
|
[30] |
Zhang W, Tsang D C W, Lo I M C. Removal of Pb by EDTA-washing in the presence of hydrophobic organic contaminants or anionic surfactant[J]. Journal of Hazardous Materials, 2008,155(3):433-439.
|
[31] |
Zhang W, Lo I M C. Chemical-enhanced washing for remediation of soils contaminated with marine diesel fuel in the presence/absence of Pb[J]. Journal of Environmental Engineering, 2007,133(5):548-555.
|
[32] |
Lalhmunsiama T D, Lee S M. Surface-functionalized activated sericite for the simultaneous removal of cadmium and phenol from aqueous solutions:Mechanistic insights[J]. Chemical Engineering Journal, 2016,283:1414-1423.
|
[33] |
Pavlović D M, Glavač A, Gluhak M, et al. Sorption of albendazole in sediments and soils:Isotherms and kinetics[J]. Chemosphere, 2018,193:635-644.
|
[34] |
陈春乐,杨婷,邹县梅,等.可生物降解螯合剂亚氨基二琥珀酸和谷氨酸N,N-二乙酸对重金属污染土壤的淋洗修复及动力学特征[J]. 生态与农村环境学报, 2021,37(3):394-401. Chen C L, Yang T, Zou X M, et al. Remediation of heavy metal contaminated soil by biodegradable chelating agents of IDS and GLDA washing and their washing kinetics characteristics[J]. Journal of Ecology and Rural Environment, 2021,37(3):394-401.
|
[35] |
Bezza F A, Nkhalambayausi-Chirwa E M. Desorption kinetics of polycyclic aromatic hydrocarbons (PAHs) from contaminated soil and the effect of biosurfactant supplementation on the rapidly desorbing fractions[J]. Biotechnology & Biotechnological Equipment, 2015, 29(4):680-688.
|
[36] |
Qiao H T, Zhao B W, Diao J R, et al. Removal of lead and zinc from contaminated soil by a novel chelating surfactant[J]. Clean-Soil, Air, Water, 2016,44(9):1191-1197.
|
[37] |
Lamichhane S, Krishna K C B, Sarukkalige R. Polycyclic aromatic hydrocarbons (PAHs) removal by sorption:a review[J]. Chemosphere, 2016,148:336-353.
|
[38] |
Crudden J J. The properties and industrial applications of N-acyl ED3A chelating surfactants[J]. Special Publications of the Royal Society of Chemistry, 1999,230:130-150.
|
[39] |
Begum Z A, Rahman I M M, Tate Y, et al. Remediation of toxic metal contaminated soil by washing with biodegradable aminopolycarboxylate chelants[J]. Chemosphere, 2012,87(10):1161-1170.
|
[40] |
Crudden J. N-Acyl ED3A chelating surfactants:Properties and applications in detergency[J]. Detergency of Specialty Surfactants, 2001,98:195-205.
|
[41] |
廖承志.一种螯合性表面活性剂的合成及性能研究[D]. 南京:南京理工大学, 2005. Liao C Z. Study on the synthesis and properties of a chelating surfactant[D]. Nanjing:Nanjing University of Science and Technology, 2005.
|
[42] |
张金永,朱玉婷,王明新,等.还原增溶强化EGTA淋洗修复重金属污染土壤[J]. 环境科学, 2020,41(5):2390-2397. Zhang J Y, Zhu Y T, Wang M X, et al. Remediation of heavy metal contaminated soil by EGTA washing enhanced with reduction solubilization[J]. Environmental Science, 2020,41(5):2390-2397.
|
[43] |
刁静茹,赵保卫,乔洪涛,等.N-LED3A在土壤中的吸附特征及其影响因素[J]. 中国环境科学, 2017,37(4):1442-1449. Diao J R, Zhao B W, Qiao H T, et al. Adsorption characteristics of N-LED3A on soil and its influence factors.[J]. China Environmental Science, 2017,37(4):1442-1449.
|
[44] |
刁静茹,赵保卫,汪萱,等.新型螯合型表面活性剂增溶多环芳烃及其螯合性能[J]. 环境化学, 2015,34(7):1304-1309. Diao J R, Zhao B W, Wang X, et al. Capabilities of a novel chelating surfactant for solubilizing polycyclic aromatic hydrocarbons and chelating Ca(Ⅱ)[J]. Environmental Chemistry, 2015,34(7):1304-1309.
|
[45] |
聂婧,秦莉,凌婉婷,等.芘在土壤不同粒径组分中的形态分布[J]. 中国环境科学, 2015,35(9):2721-2728. Nie Q, Qin L, Lin W T, et al. The forms of pyrene in different particle-size fractions of soil[J]. China Environmental Science, 2015,35(9):2721-2728.
|
|
|
|